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WO2014168873A2 - Bouteille filée par choc, en aluminium, ayant un col fileté fait d'aluminium recyclé et d'alliages améliorés - Google Patents

Bouteille filée par choc, en aluminium, ayant un col fileté fait d'aluminium recyclé et d'alliages améliorés Download PDF

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Publication number
WO2014168873A2
WO2014168873A2 PCT/US2014/033182 US2014033182W WO2014168873A2 WO 2014168873 A2 WO2014168873 A2 WO 2014168873A2 US 2014033182 W US2014033182 W US 2014033182W WO 2014168873 A2 WO2014168873 A2 WO 2014168873A2
Authority
WO
WIPO (PCT)
Prior art keywords
inches
metallic bottle
aluminum
approximately
aluminum alloy
Prior art date
Application number
PCT/US2014/033182
Other languages
English (en)
Other versions
WO2014168873A3 (fr
Inventor
John L. SILES
Matthias K. VAN DE LIEFVOORT
Kevin Reed Jentzsch
Original Assignee
Ball Corporation
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ball Corporation filed Critical Ball Corporation
Priority to ES14782344T priority Critical patent/ES2921800T3/es
Priority to RU2015147899A priority patent/RU2642231C2/ru
Priority to CA2908181A priority patent/CA2908181C/fr
Priority to AU2014251206A priority patent/AU2014251206B2/en
Priority to JP2016507586A priority patent/JP6255084B2/ja
Priority to MX2015013932A priority patent/MX2015013932A/es
Priority to CN201480032990.5A priority patent/CN105324316B/zh
Priority to EP14782344.7A priority patent/EP2983998B1/fr
Publication of WO2014168873A2 publication Critical patent/WO2014168873A2/fr
Publication of WO2014168873A3 publication Critical patent/WO2014168873A3/fr

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21CMANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES OR PROFILES, OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
    • B21C23/00Extruding metal; Impact extrusion
    • B21C23/002Extruding materials of special alloys so far as the composition of the alloy requires or permits special extruding methods of sequences
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21CMANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES OR PROFILES, OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
    • B21C23/00Extruding metal; Impact extrusion
    • B21C23/02Making uncoated products
    • B21C23/18Making uncoated products by impact extrusion
    • B21C23/186Making uncoated products by impact extrusion by backward extrusion
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21DWORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21D51/00Making hollow objects
    • B21D51/16Making hollow objects characterised by the use of the objects
    • B21D51/26Making hollow objects characterised by the use of the objects cans or tins; Closing same in a permanent manner
    • B21D51/2615Edge treatment of cans or tins
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23PMETAL-WORKING NOT OTHERWISE PROVIDED FOR; COMBINED OPERATIONS; UNIVERSAL MACHINE TOOLS
    • B23P15/00Making specific metal objects by operations not covered by a single other subclass or a group in this subclass
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D1/00Containers having bodies formed in one piece, e.g. by casting metallic material, by moulding plastics, by blowing vitreous material, by throwing ceramic material, by moulding pulped fibrous material, by deep-drawing operations performed on sheet material
    • B65D1/02Bottles or similar containers with necks or like restricted apertures, designed for pouring contents
    • B65D1/0207Bottles or similar containers with necks or like restricted apertures, designed for pouring contents characterised by material, e.g. composition, physical features
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D1/00Containers having bodies formed in one piece, e.g. by casting metallic material, by moulding plastics, by blowing vitreous material, by throwing ceramic material, by moulding pulped fibrous material, by deep-drawing operations performed on sheet material
    • B65D1/02Bottles or similar containers with necks or like restricted apertures, designed for pouring contents
    • B65D1/0223Bottles or similar containers with necks or like restricted apertures, designed for pouring contents characterised by shape
    • B65D1/023Neck construction
    • B65D1/0246Closure retaining means, e.g. beads, screw-threads
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D41/00Caps, e.g. crown caps or crown seals, i.e. members having parts arranged for engagement with the external periphery of a neck or wall defining a pouring opening or discharge aperture; Protective cap-like covers for closure members, e.g. decorative covers of metal foil or paper
    • B65D41/02Caps or cap-like covers without lines of weakness, tearing strips, tags, or like opening or removal devices
    • B65D41/04Threaded or like caps or cap-like covers secured by rotation
    • B65D41/0435Threaded or like caps or cap-like covers secured by rotation with separate sealing elements
    • B65D41/045Discs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D41/00Caps, e.g. crown caps or crown seals, i.e. members having parts arranged for engagement with the external periphery of a neck or wall defining a pouring opening or discharge aperture; Protective cap-like covers for closure members, e.g. decorative covers of metal foil or paper
    • B65D41/02Caps or cap-like covers without lines of weakness, tearing strips, tags, or like opening or removal devices
    • B65D41/04Threaded or like caps or cap-like covers secured by rotation
    • B65D41/0435Threaded or like caps or cap-like covers secured by rotation with separate sealing elements
    • B65D41/0464Threaded or like caps or cap-like covers secured by rotation with separate sealing elements the screw-thread or the like being formed by conforming the cap-skirt to the thread or the like formation on a container neck
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C1/00Making non-ferrous alloys
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C21/00Alloys based on aluminium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21CMANUFACTURE OF METAL SHEETS, WIRE, RODS, TUBES OR PROFILES, OTHERWISE THAN BY ROLLING; AUXILIARY OPERATIONS USED IN CONNECTION WITH METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL
    • B21C23/00Extruding metal; Impact extrusion
    • B21C23/02Making uncoated products
    • B21C23/18Making uncoated products by impact extrusion
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21HMAKING PARTICULAR METAL OBJECTS BY ROLLING, e.g. SCREWS, WHEELS, RINGS, BARRELS, BALLS
    • B21H3/00Making helical bodies or bodies having parts of helical shape
    • B21H3/02Making helical bodies or bodies having parts of helical shape external screw-threads ; Making dies for thread rolling
    • B21H3/04Making by means of profiled-rolls or die rolls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D1/00Containers having bodies formed in one piece, e.g. by casting metallic material, by moulding plastics, by blowing vitreous material, by throwing ceramic material, by moulding pulped fibrous material, by deep-drawing operations performed on sheet material
    • B65D1/02Bottles or similar containers with necks or like restricted apertures, designed for pouring contents
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C21/00Alloys based on aluminium
    • C22C21/02Alloys based on aluminium with silicon as the next major constituent
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22FCHANGING THE PHYSICAL STRUCTURE OF NON-FERROUS METALS AND NON-FERROUS ALLOYS
    • C22F1/00Changing the physical structure of non-ferrous metals or alloys by heat treatment or by hot or cold working
    • C22F1/04Changing the physical structure of non-ferrous metals or alloys by heat treatment or by hot or cold working of aluminium or alloys based thereon
    • C22F1/043Changing the physical structure of non-ferrous metals or alloys by heat treatment or by hot or cold working of aluminium or alloys based thereon of alloys with silicon as the next major constituent
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4998Combined manufacture including applying or shaping of fluent material
    • Y10T29/49988Metal casting
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4998Combined manufacture including applying or shaping of fluent material
    • Y10T29/49988Metal casting
    • Y10T29/49989Followed by cutting or removing material

Definitions

  • the present invention relates generally to forming a threaded neck in a metallic bottle manufactured by a process known as impact extrusion. More specifically, the present invention relates to methods, apparatus and alloy compositions used in the impact extrusion manufacturing of containers and other articles with sufficient strength characteristics to allow threading of the container neck to receive threaded closures.
  • Aluminum bottles offer the bottling industry and consumers many benefits. Aluminum bottles provide ideal surfaces to decorate with brand names, logos, designs, product information, and/or other preferred indicia and thus offer bottlers, distributors, and retailers an ability to stand out at the point of sale. Aluminum bottles have a strength-to- weight ratio advantage which enables higher stacking than comparable glass bottles. The increased durability ity of aluminum bottles also reduces the number of containers damaged during processing and shipping, resulting in further savings. Additionally, aluminum bottles are lighter than glass bottles resulting in energy savings during shipment. Finally, recycling aluminum bottles is easier because labels and other indicia are printed di ectly onto the aluminum bottles while glass and plastic bottles typically have labels that must be separated during the recycling process.
  • Aluminum beverage bottles are particularly attractive to consumers because of the convenience they offer.
  • the light weight of aluminum bottles makes them easier to carry.
  • Aluminum bottles are particularly suitable for use in public places and outdoors because they are durable, safe, and give effective protection from light and air which may negatively affect the quality and taste of the beverage contained in the aluminum bottle.
  • aluminum bottles cool down faster than beverage containers made of other materials resulting in colder beverages faster.
  • Glass bottles do not offer the same convenience because they are heavier than aluminum bottles and are easier to break.
  • Aluminum beverage bottles are known in the container industry and may be formed using an impact extrusion process.
  • Impact extrusion is a process utilized to make metallic containers and other articles with unique shapes.
  • the products are typically made from a softened metal slug comprised of steel, magnesium, copper, aluminum, tin, and lead and other alloys.
  • the container is formed inside a confining die from a cold slug which is contacted by a punch. The force from the punch deforms the metal slug around an outer diameter of the punch and the inner diameter of the confining die.
  • the container or other apparatus is removed from the punch with a counter-punch ejector, and other necking and shaping tools are used to form the device to a preferred shape.
  • an IE aluminum container which is comprised of recycled aluminum content which is sufficiently hard and rigid to allow for the formation of a threaded neck to receive a selectively removable closure such as a ROPP closure.
  • the present invention contemplates the use of a higher strength aluminum alloy which may be used during an impact extrusion process to form containers with integral threaded necks having sufficient mechanical strength to close with a roll on pilfer proof (ROPP) closure.
  • the aluminum alloy is comprised at least partly from a recycled scrap material such as aluminum beverage containers.
  • the present invention allows for the use of IE containers with thinner walls than are possible with an IE container made from 1070 or 1050 aluminum alloy IE methods.
  • IE container body with a high performance integral thread for capping pressurized beverage containers with a threaded closure.
  • a container strong enough for threading is formed in an impact extrusion process using unique alloys specifically adapted for use in an IE process, said unique alloys blended from various scrap materials with other virgin metals.
  • alloying elements such as but not limited to magnesium, may be added to the alloy to refine the chemical composition of the recycled aluminum alloy of the present invention.
  • a novel alloy is provided in the initial form of a metal slug and used to form a metallic container in an impact extrusion process, wherein the metallic container is of sufficient strength to thread the neck.
  • the alloy in one embodiment has a composition comprised of a recycled 3105 or 3104 aluminum, and a relatively pure 1070 aluminum to form a novel recycled alloy.
  • a recycled aluminum alloy which utilizes 40% of 3104 alloy is blended with a 1070 alloy, and which comprises the following composition: approximately 98.47% aluminum; approximately 0.15% Si; approximately 0.31% Fe; approximately 0.09%> Cu; approximately 0.41% Mn; approximately 0.49% Mg; approximately 0.05% Zn;
  • a recycled aluminum is blended with a 1070 alloy to form a recycled aluminum alloy.
  • the recycled aluminum comprises approximately 0.26% Si; approximately 0.53% Fe; approximately 0.16% Cu; approximately 0.84% Mn; approximately 0.6% Mg;
  • the recycled aluminum alloy comprises between about 97.70%) aluminum and about 98.05%) aluminum; between about 0.16% Si and about 0.24% Si; between about 0.37%> Fe and about 0.48% Fe; between about 0.08% Cu and about 0.15% Cu; between about 0.48% Mn and about 0.71% Mn; between about 0.34%> Mg and about 0.52%> Mg; between about 0.06% Zn and about 0.12% Zn; between about 0.01% Cr and about 0.04% Cr; and between about 0.00% Ti and about 0.04% Ti.
  • the method generally comprises (1) forming a slug with an aluminum alloy; (2) deforming the slug into a preferred shape in an impact extrusion process to form the metallic bottle; and (3) forming threads on the neck portion of the metallic bottle, the threads adapted to receive a threaded closure which can be selectively opened and closed.
  • the method may further comprise: (4) adding a titanium boride to the aluminum alloy; (5) forming individual slugs from a slab formed from a casting apparatus; (6) annealing the individual slugs in a continuous annealing process, and (7) finishing the slugs by shot blasting to increase the surface area of the slugs.
  • the aluminum alloy in one embodiment is comprised of a scrap metal of at least one of a 3104, a 3004, a 3003, a 3103, a 3013 and a 3105 aluminum alloy blended with a relatively pure aluminum alloy.
  • the aluminum alloy is blended from approximately 60% of a scrap aluminum alloy and approximately 40% of a 1070 aluminum alloy, wherein the scrap aluminum alloy comprises: between about 0.20 wt. % Si and about 0.32 wt. % Si; between about 0.47 wt. % Fe and about 0.59 wt. % Fe; between about 0.10 wt. % Cu and about 0.22 wt. % Cu; between about 0.78 wt. % Mn and about 0.90 wt.
  • the scrap aluminum alloy comprises about 0.26% Si; about 0.53%> Fe; about 0.16% Cu; about 0.84%> Mn; about 0.60% Mg; about 0.12% Zn; about 0.02% Cr; and about 0.02% Ti.
  • the aluminum alloy comprises between about 98.15% aluminum and about 98.50% aluminum; between about 0.16% Si and about 0.20%> Si; between about 0.37%> Fe and about 0.41% Fe; between about 0.08%> Cu and about 0.12% Cu; between about 0.48%> Mn and about 0.54% Mn; between about 0.34% Mg and about 0.40% Mg; between about 0.06% Zn and about 0.10% Zn; between about 0.01% Cr and about 0.04% Cr; and between about 0.00% Ti and about 0.04% Ti.
  • the aluminum alloy consists of: about 98.33% aluminum; about 0.18% Si; about 0.39% Fe; about 0.10% Cu; about 0.51% Mn; about 0.37% Mg; about 0.08% Zn; about 0.02% Cr; and about 0.02% Ti.
  • the threads have an exterior diameter of between approximately 1.4 inches and approximately 1.6 inches. In a preferred embodiment, the exterior diameter of the threads is between approximately 1.44 inches and approximately 1.54 inches. In another embodiment, the threads have an exterior diameter between approximately 1.2 inches and approximately 1.4 inches. In a preferred embodiment, the exterior diameter of the threads is between approximately 1.24 inches and approximately 1.34 inches. In yet another embodiment, the threads have an exterior diameter between approximately 1.0 inches and approximately 1.2 inches. In a preferred embodiment, the exterior diameter of the threads is between approximately 1.05 inches and approximately 1.15 inches. In still another embodiment, the exterior diameter of the threads is between approximately 1.0 inches and approximately 1.6 inches. In one embodiment, the threads have a pitch, or distance from a crest of one thread to a crest of another thread, of between about 0.10 inches and about 0.15 inches. In another embodiment, the pitch is
  • a body portion of the metallic bottle has a thickness between about 0.0098 inches and about 0.0155 inches. In a more preferred embodiment, the bottle has a thickness between about 0.0135 inches to about 0.0145 inches. In still another
  • the metallic bottle has a diameter of between approximately 2.6 inches and approximately 2.85 inches. In a preferred embodiment, the diameter of the metallic bottle may be between 2.64 and 2.75 inches. In one embodiment, the metallic bottle has a height between approximately 6.2 inches and approximately 7.25 inches. In another embodiment, the metallic bottle has a height between about 6.2 inches and about 6.3 inches. In still another embodiment, the height of the metallic bottle is between about 7.1 inches and about 7.25 inches.
  • the method includes, but is not limited to: (1) providing scrap aluminum material; (2) melting the scrap aluminum material with a 1070 aluminum alloy to form the recycled aluminum alloy, wherein the recycled aluminum alloy comprises: about 98.33% aluminum, about 0.18% Si, about 0.39% Fe, about 0.10% Cu, about 0.51% Mn, about 0.37% Mg, about 0.08% Zn, about 0.02% Cr, and about 0.02% Ti; (3) casting the recycled aluminum alloy into a slab; (4) rolling the slab to a specified thickness of between about 0.1181 inches to about 0.5512 inches; (5) cooling the slab to a predetermined temperature at an ambient temperature of between about 59°F to about 122°F; (6) punching slugs from the cooled slab; (7) annealing the slugs, wherein a peak temperature of the slugs is between about 842°
  • the slab is cooled for between about 4 hours to about 8 hours. In another embodiment, the slab is cooled for longer than 24 hours. In still another embodiment, the slab is cooled for longer than 1 week.
  • Forming threads in the neck portion generally comprises positioning the metallic bottle in a chuck to support the metallic bottle and hold the metallic bottle in a predetermined position.
  • An inner core piece of a thread forming device is positioned in the opening of the metallic bottle in contact with an interior surface portion of the neck of the metallic bottle.
  • An outer core piece of the thread forming device is positioned in contact with an exterior surface of the neck of the metallic bottle.
  • a compressive force is applied to the neck of the metallic bottle by thread forming surfaces of the inner core piece and the outer core piece.
  • the thread forming surfaces of the inner and outer core pieces have concave and convex portions predetermined to form threads of a predetermined size and geometry on the metallic bottle.
  • the thread forming device is rotated around an axial center of the metallic bottle so that the inner core piece and the outer core piece move around a circumference of the neck of the metallic bottle.
  • the method may further comprise: (13) wall ironing the extruded tube to increase the thickness of at least a portion of the neck portion, wherein the thickness of the at least a portion of neck region is greater than a thickness of the body portion of the metallic bottle, and wherein the thickness of the at least a portion of the neck region is about 0.0125 inches and about 0.0155 inches; and (14) sealing the opening of the metallic bottle with a ROPP closure.
  • the ROPP closure generally comprises a top portion, a generally cylindrical body portion extending downwardly from the top portion, a detachable pilfer band formed on a lowermost portion of the cylindrical body portion, an open aperture facing downward, and a liner in an interior top portion of the ROPP closure.
  • the cylindrical body portion of the ROPP closure used to seal the opening of the metallic bottle is initially unthreaded.
  • Sealing the metallic bottle generally comprises: placing the ROPP closure over the threads in the neck portion of the metallic bottle; pressing the ROPP closure downwardly onto sealing surfaces formed on the uppermost portion of the neck portion of the metallic bottle, compressing a liner of the ROPP closure between the sealing surfaces and the top portion of the ROPP closure; pressing a thread roller against an exterior surface of the cylindrical body portion of the ROPP closure, wherein the thread roller applies a compressive force to the cylindrical body portion and rotates around the ROPP closure to form threads in the cylindrical body portion; and pressing a pilfer roller against an exterior surface of the pilfer band to prevent the pilfer band from being removed from the neck portion of the metallic bottle when the ROPP closure is removed from the metallic bottle.
  • Impact extruding the slug may comprise: placing the slug in a die having a conical shape; and impacting the slug with a steel punch having a predetermined shape, wherein the extruded tube is extruded backwards out of the die.
  • the die has a Vickers hardness (HV) of between approximately 920 HV and approximately 1080 HV. In a more preferred embodiment, the die has a hardness of between
  • the die has a hardness of between approximately 990 HV and approximately 1010 HV. In one embodiment the punch has a hardness of between approximately 600 HV and approximately 760 HV. In a more preferred embodiment, the punch has a hardness of between approximately 640 HV and approximately 720 HV. In a still more preferred embodiment, the punch has a hardness of between approximately 670 HV and approximately 690 HV. In one embodiment, the slug has a diameter of between approximately 1.61 inches and approximately 1.91 inches. In a more preferred
  • the slug has a diameter of between approximately 1.71 inches and approximately 1.81 inches. In a still more preferred embodiment, the slug has a diameter of between approximately 1.75 inches and approximately 1.766 inches. In one
  • the slug has a height of between about 0.17 inches and about 0.27 inches. In another embodiment, the slug has a height of between about 0.20 inches and about 0.235 inches. In a still more preferred embodiment, the slug has a height of between about 0.216 inches and about 0.217. In one embodiment, the slug has a mass of between
  • the slug has a mass of between approximately 0.7 ounces and approximately 0.865 ounces. In a still more preferred embodiment, the slug has a mass of between about 0.740 ounces and about 0.825 ounces.
  • the aluminum alloy comprises: between about 97.70 wt. % aluminum and about 98.05 wt. % aluminum; between about 0.20 wt. % Si and about 0.24 wt. % Si; between about 0.44 wt. % Fe and about 0.48 wt. % Fe; between about 0.11 wt. % Cu and about 0.15 wt. % Cu; between about 0.65 wt. % Mn and about 0.71 wt. % Mn; between about 0.46 wt. % Mg and about 0.52 wt. % Mg; between about 0.08 wt. % Zn and about 0.12 wt. % Zn; between about 0.01 wt. % Cr and about 0.04 wt. % Cr; and between about 0.00 wt. % Ti and about 0.04 wt. % Ti.
  • the threads are formed by a thread forming device, the thread forming device comprising: a chuck to hold the metallic bottle in a predetermined position; an inner core piece with a first thread forming surface operable to apply a force to an interior surface of the neck portion of the metallic bottle; and an outer core piece with a second thread forming surface operable to apply a force to an exterior surface of the neck portion of the metallic bottle, wherein the thread forming device is operable to rotate around an axial center of the metallic bottle.
  • Still another aspect of the present invention is a metallic bottle with a threaded neck, the metallic bottle generally comprising: a bottom dome portion; a body portion extending upwardly from the bottom dome portion; a neck portion extending upwardly from the body portion; threads formed on an exterior surface of the neck portion; and an opening positioned on an uppermost portion of the neck portion. Sealing surfaces are formed on the uppermost portion of the metallic bottle and a pilfer band skirt is formed on the neck portion of the metallic bottle.
  • the metallic bottle is comprised of a recycled aluminum alloy, the recycled aluminum alloy comprising: between about 97.70 wt. % aluminum and about 98.50 wt. % aluminum, between about 0.16 wt.
  • the threaded neck of the metallic bottle has a predetermined geometry adapted to receive a ROPP closure, the threads adapted to receive the ROPP closure having an interior diameter of about 1.5 inches. In another embodiment, the threads are adapted to receive the ROPP closure having an interior diameter of about 1.3 inches. In yet another embodiment, the threads are adapted to receive the ROPP closure having an interior diameter of about 1.1 inches. In one embodiment, the threads have a pitch of between about 0.10 inches and about 0.15 inches. In another embodiment, the pitch of the threads is approximately 0.125 inches, or approximately eight threads per inch.
  • the metallic bottle has a body with a diameter of between approximately 2.537 inches and approximately 2.838 inches. In a more preferred embodiment, the body of the metallic has a diameter of between approximately 2.68 inches and approximately 2.695 inches. In one embodiment, the metallic bottle has and a height of between approximately 6.0 inches and approximately 7.4 inches. In another embodiment, the metallic bottle has and a height of between approximately 6.175 inches and approximately 6.325 inches. In a preferred embodiment, the metallic bottle has and a height of between approximately 6.2 inches and approximately 6.3 inches. In still another embodiment, the metallic bottle has and a height of between approximately 7.112 inches and approximately 7.263 inches. In a preferred embodiment, the metallic bottle has and a height of between approximately 7.162 inches and approximately 7.213 inches.
  • compositions of aluminum alloys are provided and contemplated herein.
  • the amount of each component i.e., Si, Fe, Cu, etc. may be varied approximately 15% to achieve satisfactory results.
  • at least one of Si, Fe, and Cu is added to the aluminum alloy.
  • only one of Si, Fe, and Cu is added to the aluminum alloy.
  • no Si, Fe, or Cu is added to the aluminum alloy.
  • other elements may be added to the aluminum alloy.
  • one or more of Mn, Zn, Cr, and Ti are added to the alloy aluminum.
  • only one of Mn, Zn, Cr, and Ti are added to the aluminum alloy.
  • novel alloy compositions described herein and used in the impact extrusion process be comprised entirely or in part with recycled components and alloys. Rather, the alloys may be obtained and blended from stock materials which have not previously been used or implemented in previous products or processes.
  • lightweight containers with threaded necks comprising recycled contents are provided. At least one of the following advantages may be realized: strength to weight ratio; burst pressures; deformation pressures; dent resistance; resistance to scratching or galling; and/or reduction in weight and metal content. Other advantages are also contemplated. Furthermore, aspects and features of the present invention provide for containers with increased resistance to back annealing allowing liner materials with higher cure temperatures.
  • an alloy for producing IE containers with higher back annealing resistance is contemplated, resulting in improved container performance, and utilizing coatings requiring higher curing temperatures.
  • Container designs and tooling designs for producing such containers are also contemplated.
  • an aluminum slug and corresponding IE container with sufficient strength characteristics to thread the neck and comprising recycled material is provided.
  • the recycled content may be post-industrial or post-consumer content, the use of which enhances overall product and process efficiency.
  • a significant portion of known scrap, such as offal from cup making processes, contains a higher concentration of alloying elements than the base 1070 alloy currently used. These alloying elements, while providing various cost and environmental advantages, modify the metallurgical characteristics of the aluminum. For example, inclusion of these elements increases the solidification temperature range. Casting challenges are thus present. As yield strength increases and the ductility decreases, issues are created with respect to rolling the strip, for example.
  • Recrystallization characteristics are known to change, necessitating potential changes to the thermomechanical treatment(s), including but not limited to: rolling temperatures, rolling reductions, annealing temperatures, annealing process, and/or annealing times.
  • the increased ultimate tensile strength and yield strength increases the tonnage loads when punching slugs.
  • slugs of the present invention are critical due to the modified metallurgical characteristics. Tonnage loads on the extrusion presses are typically higher in connection with slugs of the present invention. In various embodiments, the increased material strength of the present invention enables attainment of standard container performance specifications at significant lower container weights and/or wall thicknesses.
  • closures should not necessarily be construed as limiting the present invention to a particular type of closure or a particular thread design. It should be appreciated that the current process may be used to form a metal container with threads suitable for any variety of closures including ROPP closures, crown caps, and twist off caps of any size, thread design, or thread geometry. The current invention may also be used to form a metal container with interior threads designed to be sealed with a closure having threads formed on an exterior surface of the closure wherein the closure is inserted into an opening of the metal container.
  • closures may be formed of any suitable material know in the art including metal, plastic, rubber, wood, cork, glass, or any combination thereof.
  • each of the expressions “at least one of A, B and C,” “at least one of A, B, or C,” “one or more of A, B, and C,” “one or more of A, B, or C,” and "A, B, and/or C” means A alone, B alone, C alone, A and B together, A and C together, B and C together, or A, B and C together.
  • Fig. 1 illustrates a method for manufacturing an alloy slug from a recycled aluminum material
  • FIG. 2 illustrates an impact extrusion method for use with the recycled aluminum material, and is a continuation of the process shown in Fig. 1;
  • FIG. 3 illustrates a continuous anneal process
  • FIGs. 4A and 4B illustrate a method and the associated tools used to form threads on a metallic bottle according to one embodiment of the present invention
  • Fig. 5A is a fragmented front elevation view of a threaded neck of a metallic bottle of one embodiment of the present invention
  • Fig. 5B is a fragmented prospective view of threaded neck designs of metallic bottles manufactured by impact extrusion according to certain embodiments of the present invention.
  • FIGs. 6Aand 6B illustrate a method of sealing a metallic bottle with a closure according to one embodiment of the present invention
  • Fig. 7 illustrates a method and the associated tools used to form threads on a ROPP closure according to one embodiment of the present invention
  • FIG. 8 are front elevation views of sealed metallic bottles according to various embodiments of the present invention.
  • Fig. 9 illustrates an alloy composition and comparison of Material 1 and Material 2;
  • Fig. 10 illustrates a punch head and press die used in various embodiments of the present invention
  • Fig. 11 illustrates deformation pressure resistance for containers made with Material 1 and Material 2;
  • Fig. 12 illustrates burst pressure resistance for Material 1 and Material 2;
  • Fig. 13 illustrates container mass for sample Material 1 and sample Material 2.
  • various aluminum alloys are identified by numerical indications such as 1070 or 3104.
  • aluminum is designated by its major corresponding alloying elements, typically in four-digit arrangement. The first of these four numbers corresponds to a group of aluminum alloys sharing a major alloying element, such as 2XXX for copper, 3XXX for manganese, 4XXX for silicon, etc.
  • major alloying element such as 2XXX for copper, 3XXX for manganese, 4XXX for silicon, etc.
  • the term “recycled aluminum alloy” (which may be abbreviate "RA") followed by a number may be used to identify a particular alloy of the present invention.
  • the term “recycled aluminum alloy” or “RE” is merely an identifier for a metal containing recycled aluminum.
  • 3104 aluminum alloy commonly known in the art is recycled with another material, typically 1070 aluminum alloy. The number and percentage used after the term “recycled aluminum” identifies the percent of that 3104 recycled alloy which is combined with a 1070 aluminum alloy to form the new alloy used in an impact extrusion process.
  • recycled aluminum alloy 3104 30% or RA 3104-30 identifies that 30% of a 3104 alloy has been combined with 70% of a relatively pure 1070 aluminum alloy to form a new alloy having the metallurgical composition of Si, Fe, Cu, etc. provided in the charts.
  • Other charts refer to the number "3105" and a percentage of that alloy provided in a given alloy, such as 20% or 40%. Similar to the 3104 alloy, the term "3105" is an aluminum alloy well known by those skilled in the art, and the 20% or 40% reflects the amount of that alloy which is mixed with a relatively pure 1070 aluminum alloy to form the new alloy which is used in the metal slug and the impact extrusion process to manufacture a container such as an aerosol can.
  • Table 2 illustrates compositions of recycled slug materials, wherein the pure aluminum is aluminum alloy 1070 and the recycled scrap material is 3104 at different percentages. All values listed in the table are approximate values.
  • Table 3 illustrates compositions of recycled slug materials, wherein the pure aluminum is aluminum alloy 1070 and the recycled scrap material is alloy 3105 at different percentages. All values listed in the table are approximate values.
  • Table 4 illustrates compositions of recycled slug materials, wherein the pure aluminum is aluminum alloy 1070 and the recycled scrap material is alloy 3004 at different percentages. All values listed in the table are approximate values.
  • Table 5 illustrates compositions of recycled slug materials, wherein aluminum alloy 1070 is combined with a recycled aluminum material with the composition indicated,
  • the recycled aluminum material represents an alloy formed from various scrap aluminum material. All values listed in the table are approximate values.
  • Fig. 1 illustrates a method 100 of fabricating an alloy from recycled aluminum. While a general order of method 100 is illustrated in Fig. 1, the method 100 can include more or fewer steps and the order of the steps can be arranged differently than the method 100 illustrated in Fig. 1.
  • the recycled aluminum is processed to make slugs, which may be used in an impact extrusion process. Following the formation of the slugs, the slugs are processed in order to manufacture a metallic bottle as provided in Fig. 2, which is discussed in greater detail below.
  • One aspect of the present invention is a method to fabricate a recycled aluminum material.
  • the recycled aluminum slug material may comprise a recycled scrap aluminum and a pure aluminum, which are melted and cast together to form a novel recycled aluminum slug.
  • Suitable recycled aluminum material may include many 3XXX alloys, especially 3005, 3104, 3105, 3103, 3013, and 3003 alloys. In smaller quantities, other alloys may be used to achieve the target chemistry. Alloy 3104 scrap is commonly sourced from beverage can plants. Alloy 3005 is commonly sourced from the automotive industry.
  • the pure aluminum may include aluminum alloys 1070 or 1050. A variety of scrap aluminum sources may be used as a source for the alloying element of the recycled aluminum alloy of the present invention. Pure aluminum alloys such as 1050 or 1070 may be used with elemental additions to achieve the target chemical composition of the recycled aluminum alloy.
  • Scraps bricks comprising recycled scrap aluminum are melted to facilitate mixing with the molten pure aluminum 102.
  • the recycled scrap aluminum may comprise aluminum alloys 3005, 3104, 3105, 3003, 3013, or 3103.
  • the furnace flame directly contacts the recycled aluminum, a small amount of the surface aluminum oxidizes. If the surface area is large, such as compacted scrap bricks, the amount of the material oxidized and the melt loss is higher than if the scrap bricks comprise a small surface area.
  • melting furnaces that utilize indirect methods to heat the materials are preferred to those that utilize direct flame impingement.
  • melting may occur in several types of furnaces.
  • a reverbatory furnace 112 may be used which is typical to produce conventional impact extrusion slugs.
  • the aluminum is subject to direct flame impingement.
  • a reverbatory furnace 112 is not a preferred method to produce recycled aluminum alloy slugs because of the high melt loss.
  • a furnace that utilizes an indirect method to heat the materials is preferred.
  • Furnaces that utilize an indirect method to heat materials include, but are not limited to, side well furnaces 110 and rotary furnaces 104.
  • a side well furnace 110 may be used as the furnace.
  • Side well furnaces contain the aluminum and gas burners transfer heat to the molten metal. The molten metal is then used to melt the scrap.
  • Side well furnaces also have an impeller that circulates the molten bath through a side well. Scrap aluminum is fed into the side well at a rate such that the material largely melts before it circulates into the portion of the side well furnace where direct flame
  • a side well furnace 110 is a preferred method for melting scrap metal for the recycled aluminum alloy production.
  • a rotary furnace 104 may be used.
  • a rotary furnace 104 is similar to a concrete mixer. The aluminum scrap tumbles in one corner of the rotating cylinder. The flame is directed away from this area and heats the refractory lining. The hot lining rotates and contacts the aluminum and transfers energy to the aluminum.
  • a rotary furnace 104 is a preferred method for melting scrap for the production of the recycled aluminum alloy. If a rotary furnace 104 or side well furnace 110 is used, the scrap exiting the rotary furnace 104 or side well furnace 110 may be melted and cast into ingots, sows or pigs 106 in an operation separated from the slug production. These ingots, sows or pigs may be melted in a second reverbatory furnace 108 with minimal melt loss because the surface area is relatively small. If elevated melt loss does occur during the melting process, dross must be removed from the bath.
  • Titanium boride (TiBor) 114 is added to the melted blend of aluminum alloys just prior to the caster normally by a continuous feed of aluminum with a titanium boride dispersion.
  • the TiBor could possibly be added to the aluminum scrap alloy while it is in the furnace.
  • the TiBor may refine the grain structure of the recycled aluminum alloy during processing.
  • the TiBor concentration is between about 1 lb/ton to about 2.6 lb/ton. In some embodiments, the TiBor concentration is about 0.6 kg/metric tonne.
  • the molten alloy is cast.
  • molten alloy is solidified into a continuous slab of any suitable dimension using one of several casting techniques.
  • the cast slabs are about 8 inches to about 14 inches in width and about 0.75 inches to about 1.5 inches thick.
  • the casting speed should be in the range of between about 0.55 to about 0.88 tons/hour/inch of width. In some embodiments, the casting speed may be about 0.68 tons/hour/inch of width.
  • Different casting methods may be used and may be chosen from a Hazelett caster 116, a wheel belt caster 118, a twin roll caster 120 and/or a block caster 122.
  • a wheel belt caster 118 When a wheel belt caster 118 is used, the molten aluminum is held between a flanged wheel and a thick metal belt during solidification. The belt wraps around the wheel at about 180°. Both the wheel and the belt are chilled with water on the back side to optimize and control heat extraction.
  • This wheel belt caster process is commonly used to make 1070 and 1050 slugs.
  • the thick steel belt is inflexible and unable to deflect and maintain contact with the slab that is shrinking due to solidification. The effect is magnified by the recycled aluminum alloys because it solidifies over a larger temperature range than the more pure alloys, 1050 and 1070.
  • a Hazelett caster 116 may be used.
  • the molten aluminum is held between two parallel, flexible steel belts during solidification.
  • Steel dam blocks are chain mounted and form the sides of the mold.
  • the parallel belts slope slightly downward to allow gravity to feed molten aluminum into the system.
  • High pressure water is sprayed on the back side of both belts to optimize and control heat extraction. This high pressure water also deflects the belt to keep it in contact with the solidifying, contracting slab. This belt deflection enables the Hazelett caster 116 to produce a wide range of aluminum (and other) alloys.
  • the Hazelett caster process is commonly used to produce architectural aluminum strip and may be used to produce impact extrusion slugs.
  • a twin roll caster 120 may be used.
  • the molten aluminum is held between two counter rotating, water cooled rolls during solidification.
  • the process provides a very small solidification zone and is therefore limited to relatively thin "slabs.” At this thickness, the term strip is probably more accurate than slab. This process is commonly used in the manufacture of aluminum foil.
  • a block caster 122 may be used.
  • the molten aluminum is held between a series of chain mounted steel blocks during solidification that form the sides of the mold.
  • the blocks are water cooled to optimize and control heat extraction.
  • a lubricating powder may be applied to the caster components that contact the slab. More specifically, a graphite or silica powder may be applied as necessary.
  • Temperature control is important during and following the casting process. During casting, regardless of the casting process used, the cooling rate and temperature profile of the slab must be carefully controlled during solidification. The wheel belt caster 118 reduces the cooling water flow rate to achieve this. If the Hazelett caster 116 is used, the water flow for general control and gas flow over the slab may be used to closely modify the temperature. Ambient conditions, especially air flow must be controlled near the caster. This air flow control is especially critical when gas flow is used to modify the slab temperature.
  • the temperature of the slab at the exit of the caster must also be carefully controlled.
  • the exit temperature of the slab through the caster must be above about 968°F, however the maximum temperature of any part of the slab exiting the caster must be less than about 1080°F.
  • the thickness of the slab is reduced from about 1.10-1.38 inches to a specified thickness of between about 0.118 inches to about 0.551 inches with a hot mill 124/126 and a cold mill 130/132.
  • the relative thickness reduction taken in the hot mill 124/126 and the cold mill 130/132 significantly affects the metallurgical grain structure of the finished product.
  • the thickness of the slab at the hot mill exit may vary. In some embodiments, the thickness of the slab following hot milling 124/126 is between about 0.236 inches to about 0.709 inches.
  • the slab passes between two counter rotating rolls with a gap less than the incoming thickness while the slab is still at a high temperature of between about 842°F to about 1,022°F.
  • Rolling mills have two commonly used configurations. The most common is a two-high mill that contains only two counter-rotating rolls that contact the slab/strip. Two rolling mills are used to obtain the desired thickness. However, a different number of rolling mills may be used: 1, 3, etc.
  • an advanced design is a four-high mill in which the two-counter rotating rolls, the work rolls, are backed up by larger rolls.
  • an additional hot mill 126 may be used. Alternatively, multiple hot mills may be used and the slabs may be recirculated to a hot mill 124/126 in order to achieve the specified thickness.
  • the alloy material may dynamically recrystallize and/or recover.
  • This recrystallization and/or recovery is a self annealing process enabled by the heat in the slab/strip.
  • the temperatures at which dynamic recrystallization and/or recovery may occur varies with alloy content and may therefore differ for 1050/1070 and recycled aluminum alloys. In most instances, the temperature for dynamic
  • recrystallization and/or recovery is between about 662°F to about 1,022°F for recycled aluminum alloy material.
  • the hot rolled strip is immersed in a quench tank 128.
  • the quench tank 128 contains water that reduces the strip temperature to near ambient.
  • the strip is subjected to a cold mill 130/132.
  • the strip may be at ambient temperature and passes between two counter rotating rolls with a gap less than the incoming thickness. Normally two rolling mills may be used to obtain the desired thickness. However, a different number of rolling mills may be used: 1, 3, etc.
  • the cold rolled strip does not recrystallize. This cold working causes the yield strength of the material to increase and the ductility decreases.
  • Cold mills 130/132 may have two-high and four-high configurations.
  • the four-high configuration may have better thickness control and is therefore strongly preferred during cold rolling when the final thickness is made.
  • an additional cold mill 132 may be used.
  • multiple cold mills may be used and the slabs may be recirculated to a cold mill 130/132 in order to achieve the specified thickness.
  • strips may be subjected to ambient cooling 134 at between about 59°F to about 122°F, preferably about 77°F, for between about 4 hours to about 8 hours following cold milling 130/132.
  • the cooled strip is typically held in storage to allow it to return to ambient temperature.
  • the cooled strips are punched 136.
  • the cooled strip is uncoiled and fed into a die set mounted in a press.
  • the die set cuts circular slugs from the strip, though it is understood that any shape of slug such as triangle, oval, circle, square, diamond, rectangle, pentagon, or the like may be used depending upon the shape of the die and/or the desired end product.
  • the punching tool may be modified in order to control burrs.
  • the tool may be modified so that the die button chamfer is between about 0.039 inches by about 25° to about 0.050 inches by 29°.
  • the punched slugs are heated to recrystallize the grains and ideally form a homogeneous, equiaxed grain structure.
  • the process decreases the strength of the material and increases ductility.
  • Annealing may occur by batch annealing 138 and/or continuous annealing 140.
  • the punched slugs When the punched slugs are batch annealed 138, the punched slugs may be loosely loaded into a holding device such as a wire mesh baskets.
  • a holding device such as a wire mesh baskets.
  • Several holding devices may be stacked together inside a furnace. The door to the furnace is closed and the slugs may be heated to a target temperature and held for a specified time.
  • the target temperature within the interior of furnace is preferably between about 878°F to about 1,112°F for between about 5 to about 9 hours, though the annealing time and temperature have a strong interaction and are influenced by the alloy content of the slugs.
  • the furnace may be turned off and the slugs allowed to slowly cool in the furnace.
  • the punched slugs may be continuously annealed 140.
  • the punched slugs are continuously annealed 140, the slugs are loosely distributed on a metal mesh belt on conveyed through a multi-zone furnace.
  • the punched slugs are quickly heated to a peak metal temperature and then quickly cooled.
  • the operation may be performed in air.
  • the peak metal temperature of the punched slugs is between about 842°F to about 1058°F.
  • the peak metal temperature influences the final metallurgical characteristics.
  • the peak temperature for optimal metallurgical characteristics is influenced by alloy content.
  • Continuous annealing 140 is the preferred process for producing recycled aluminum alloy slugs. Continuous annealing 140 provides two benefits over batch annealing.
  • the shorter time at elevated temperature reduces oxide formation on the surface of the slug.
  • Aluminum oxides are a concern, however, magnesium oxides are a major concern due to its extreme abrasive nature. Increased magnesium oxide on the surface of the punched slugs may cause excessive scratching of tools used during the impact extrusion process. On extended runs these scratches are an unacceptable quality defect.
  • the precisely controlled and homogeneous thermal cycle including rapid heating, limited time at elevated temperature, and rapid cooling of the continuous anneal 140 results in improved and more uniform metallurgical grain structure. This in turn produces IE containers of higher strength. Higher strength containers enable the IE containers to be lighter.
  • Figure 3 illustrates temperature curves of a continuous annealing process. [0089] Finishing
  • the surface of the punched slugs may be finished by roughening the surface of the punched slugs.
  • Different methods may be used to finish the punched slugs.
  • a tumbler process 142 may be used. A large quantity of the punched slugs are placed in a drum or other container and the drum is rotated and/or vibrated. As slugs fall onto other slugs, denting may occur to one or both slugs.
  • the purpose of roughening the surface is to increase the high surface area of the punched slug and create recesses to hold lubricant.
  • the large faces of the punched slugs may also be finished along with the sheared surfaces.
  • a shot blast finishing process 144 may be used.
  • the shot blast finishing process 144 a large number of slugs are placed in an enclosed drum and subjected to impingement by aluminum shot or other materials. The shot forms small depression on the surfaces of the slugs. The slugs are tumbled slightly so the aluminum shot contacts all surfaces of the slug.
  • Shot blasting 144 is the preferred process for producing recycled aluminum alloy slugs, and aggressive shot blasting has been shown to be the most effective at removing surface oxides from slugs. This removal of the surface oxides are especially critical for removing adherent magnesium oxides, which cause scratches in IE containers if they are not removed from the slug.
  • Figure 2 illustrates a method 200 of manufacturing a metallic bottle 250 using a slug manufactured from recycled scrap material according to the method 100 as illustrated in Fig. 1. While a general order of method 200 is illustrated in Fig. 2, the method 200 can include more or fewer steps and the order of the steps can be arranged differently than illustrated in Fig. 2.
  • One embodiment of a metallic bottle 250 of the present invention is illustrated in Fig. 4A.
  • a slug lubrication process 202 may be used wherein the slugs are tumbled with a powdered lubricant. Any suitable lubricant may be used as appreciated by one skilled in the art. Typically about 3.53 oz of lubricant is used per about 220 lb of slugs. Tumbling the lubricant with the slugs forces lubricant onto the slugs. If the slugs have been roughened, then tumbling the slugs with the lubricants forces the lubricant into the depressions created during the finishing operation.
  • the lubricated slugs are subjected to an impact extrusion process 204. More specifically, the lubricated slugs are placed in a cemented carbide die of precise shape. The lubricated slug is impacted by a steel punch, also of precise shape, and the aluminum is extruded backwards away from the die.
  • the tooling shapes dictate the wall thickness of the extruded tube portion of the metallic bottle 250. Although this process is generally known as back extrusion, a forward extrusion process or combinations of back and forward extrusion could also be used as appreciated by one skilled in the art.
  • the tooling of the punch and die have shapes to form threads in the extruded metallic bottle 250.
  • wall ironing 206 may be performed.
  • the metallic bottle 250 may be passed between a punch and an ironing die with negative clearance.
  • wall ironing 206 thins the wall of the tube.
  • wall ironing 206 is performed on the tube to increase the thickness of an area that will become the thread region 266 of the neck portion 258 of the metallic bottle 250 to between about 0.0125 inches and about 0.0155 inches.
  • the thickness of the thread region 266 is greater than a thickness of the body portion 252 of the metallic bottle 250, resulting in a stronger thread region 266 without increasing the amount of used to form the rest of the metallic bottle 250 and thereby reducing the material cost of each metallic bottle produced.
  • the higher strength of the recycled aluminum alloy increases die deflection. Therefore a smaller die is required to achieve the desired wall thickness. This optional process optimizes material distribution and keeps longer tubes straight.
  • the dome forming 208 on the bottom 254 of the metallic bottle 250 may be performed following the impact extrusion 204 or the wall ironing 206.
  • the full dome or a portion of the dome may be formed either at the end of the ironing stroke or in the trimmer.
  • the metallic bottle 250 is brushed 210 to remove surface imperfections.
  • the rotating metallic bottle 250 is brushed by an oscillating metal or plastic, typically nylon, brush.
  • brushing 210 may be performed if the metallic bottle 250 has been subjected to wall ironing 206 and/or doming 208.
  • the metallic bottle 250 is washed 212 in a caustic solution to remove lubricants and other debris.
  • the caustic wash 212 may comprise sodium hydroxide or alternatively potassium hydroxide or other similar chemicals known by those skilled in the art.
  • the interior of the metallic bottle 250 is typically lance coated 214A.
  • the coating may be epoxy based.
  • the coating may be applied using any suitable method including, but not limited to, spraying, painting, brushing, dipping, or the like.
  • the coating is thermally cured 214B at a temperature of between about 392°F to about 482°F for between about 5 to about 15 minutes.
  • Base coating 216A is generally applied to the exterior of the metallic bottle 250.
  • the base coating may be a white or clear base coat.
  • the coating may be applied using any suitable method including, but not limited to, spraying, painting, brushing, dipping, or the like.
  • the coating is thermally cured 216B at a temperature of between about 230°F to about 356°F for between about 5 to about 15 minutes.
  • Decorative inks 218A may also be applied to the base coated metallic bottle 250 to produce brand names, logos, designs, product information, and/or other preferred indicia.
  • the decorative ink may be applied using any suitable method including, but not limited to, spraying, painting, brushing, dipping, printing, or the like.
  • the metallic bottle 250 may be decorated using lithography or other printing processes such as offset printing, dry offset printing, gravure printing, intaglio printing, screen printing, tampo printing, and inkjet printing. Methods and apparatus used to decorate metallic containers are disclosed in U.S. Provisional Patent Application Serial No. 61/833,799 which is incorporated herein in its entirety by reference.
  • the decorative inks may be non- varnish inks or any other suitable ink, including thermochromatic inks.
  • the decorative inks are thermally cured 218B at a temperature of between about 248°F to about 356°F for between about 5 to about 15 minutes.
  • a clear over varnish 220 A is applied to the metallic bottle 250.
  • the varnish may be applied using any suitable method including, but not limited to, spraying, painting, brushing, dipping, or the like.
  • the varnish is thermally cured 220B at a temperature of between about 302°F to about 392°F for between about 5 to about 15 minutes.
  • the coatings protect the metal of the body portion from tooling contact, corrosion, and/or to protect the contents of the metallic bottle.
  • one or more of the coatings may be cured 214B, 216B, 218B, 220B using any other suitable method known to those of skill in the art including using ultra violet light.
  • dome forming 222 may be formed or completed on the bottom of the metallic bottle 250. Dome forming 222 may be completed at this stage to ensure that the decoration extends to the standing surface of the metallic bottle 250.
  • An advantage of a two stage doming operation (before trimming 230 and before necking 224) is that the base coat extends to the standing surface of the finished can.
  • the diameter of the opening 260 of the metallic bottle 250 may be reduced by a process called necking 224.
  • Methods and apparatus used in necking metal containers are disclosed in U.S. Patent No. 4,403,493, U.S. Patent No. 4,693,108, U.S. Patent No. 4,732,027, U.S. Patent No. 5,138,858, U.S. Patent No. 5,448,903, U.S. Patent No. 5,469,729, U.S. Patent No. 5,713,235, U.S. Patent No. 5,778,723, and U.S. Patent No. 7,140,223 which are each incorporated herein in their entirety by reference.
  • the number of reducing steps depends on the diameter reduction of the metallic bottle 250 and the shape of the neck 258. For recycled aluminum alloy material, more necking steps are generally anticipated. Further, as the recycled aluminum alloy content is altered, some modifications may be expected. For example, one modification requires that the necking center guides be changed in some instances. Larger center guides must be installed when running lightweight recycled aluminum alloy metallic bottles 250 that are thinner near the top.
  • the body 252 of the metallic bottle 250 may be shaped 226.
  • Shaping 226 may occur in various stages.
  • the number of shaping steps depends on the composition of the recycled aluminum alloy and the wall thickness of the metallic bottle 250.
  • the recycled aluminum alloy may require additional shaping stages as compared to a traditional IE process that uses conventional alloys. Similar to necking, a greater number of incremental forming steps must be used when shaping metallic bottles 250 made from recycled aluminum alloy of the present invention.
  • the number of shaping steps is similar to the number of shaping steps used to shape metallic bottles formed by a D&I process.
  • tooling may move perpendicular to the container axis and emboss 228 shapes in the metallic bottle 250.
  • the force applied during embossing 228 may be higher when using recycled aluminum alloy material than when traditional impact extrusion material is used as a result of higher as formed strength relative to 1070 or 1050 alloys.
  • wall ironing 206A may be performed.
  • the wall ironing 206A thins at least a portion of the wall of the tube.
  • the wall ironing 206A is performed on the tube, including the area that will become the thread region 266, to control the thickness of an area that will become the thread region 266 of the neck portion 258 of the metallic bottle 250 to between about 0.0125 inches and about 0.0155 inches.
  • the thickness of the wall can be ironed to a final thickness that varies along the axis of the metallic bottle.
  • the thickness of the thread region 266 is generally greater than a thickness of the body portion 252 of the metallic bottle 250, resulting in a stronger thread region 266 without increasing the amount of material used to form the rest of the metallic bottle 250 and thereby reducing the material cost of each metallic bottle produced.
  • Metal flow in necking 224 may create an uneven, work hardened edge.
  • the edge is trimmed 230 prior to curling. Due to anisotropy differences, recycled aluminum alloy thickens in a different profile during necking 224. Therefore, it is possible at high necking reductions and high alloy content that additional trimming operations may be required.
  • the open edge of the container is curled 232 over itself to create a mounting surface for an aerosol valve.
  • the curl may accept a crown closure or may be formed into a thread to accept a cap or other closure.
  • a small amount of material may be machined off of the top of the curl, which is known as the mouth mill 234.
  • the mouth mill 234 may be required for mounting certain aerosol valves.
  • the metallic bottle 250 has a body portion 252 with a bottom dome portion 254.
  • the body portion 252 also has a sidewall portion 256 with a lower sidewall portion 256A, a middle sidewall portion 256B, and an upper sidewall portion 256C.
  • the body portion 252 has a neck portion 258 extending upwardly from the upper sidewall portion 256C.
  • the neck portion 258 has a pre-formed thread portion 266 where the threads 264 will be formed.
  • An opening 260 is positioned on an uppermost portion of the neck portion 258.
  • the metallic bottle 250 may have any size or shape.
  • the sidewall portion 256 of the metallic bottle 250 generally has a cylindrical shape with an outer diameter 262 of approximately 1.77 inches.
  • the body portion 252 has a thickness between about 0.0098 inches and about 0.0155 inches. In a more preferred embodiment, the body portion 252 has a thickness of between about 0.0135 inches and about 0.0145 inches.
  • the thickness of the neck region 258 is between about 0.0125 inches and about 0.0155 inches. In a more preferred embodiment, the thickness of the neck region 258 is between about 0.0135 inches and about 0.0145 inches.
  • the thread portion 266 has a material thickness greater than the thickness of a material thickness of the sidewall portion 256.
  • the metallic bottle has a diameter 262 of between approximately 2.6 inches and approximately 2.85 inches. In a more preferred embodiment, the diameter of the metallic bottle is between approximately 2.64 and approximately 2.75 inches. In a still more preferred embodiment, the diameter of the metallic bottle is approximately 2.6875 inches.
  • the metallic bottle 250 has a height 263 between about 6.2 inches and about 6.3 inches. In a preferred embodiment, the height of the metallic bottle is approximately 6.25 inches. In still another embodiment, the height of the metallic bottle is between about 7.1 inches and about 7.25 inches. In another preferred embodiment, the height 263 is about 7.1875 inches. In yet another embodiment, the height 263 of the metallic bottle is between approximately 6.0 inches and approximately 7.4 inches.
  • the sidewall portion 256 of the metallic bottle 250 has a gradual and smooth taper from the starting cylindrical body diameter transitioning inward with a large convex radius (preferably from 2 to 20 inches) and smoothly blending into a similar size concave radius to the vertical chimney.
  • This shaped sidewall portion 256 has a first outer diameter at the lower sidewall portion 256 A substantially equal to an outer diameter at the upper sidewall portion 256C. The first outer diameter is greater than a second outer diameter near the middle sidewall portion 256B of the body portion 252.
  • the metallic bottle 250 has a tapered body portion 252 with a diameter 262 at the lower sidewall portion 256A which is greater than a diameter at the middle sidewall portion 256B and a diameter at the upper sidewall portion 256C.
  • a thread forming device 268 forms the threads 264 in the metallic bottle 250.
  • the device 268 has an inner core piece 270 that is moved into the opening 260 of the metallic bottle 250 and contacts an interior surface portion 261 of the thread portion 266 of the neck 258.
  • An outer core piece 272 is positioned in contact with an exterior surface of the thread portion 266.
  • the inner and outer pieces 270, 272 have thread forming surfaces 274, 276 with concave and convex portions predetermined to form the threads 264 on the metallic bottle 250.
  • Inner and outer pieces 270, 272 with different surfaces 274, 276 may be interconnected to the thread forming device 268 to form threads with different shapes and geometries on metallic bottles 250.
  • two or more different inner and outer pieces 270, 272 with different surfaces 274, 276 may be used in a number of successive operations to form the threads on the metallic bottles 250.
  • the thread forming device 268 has been moved into operable contact with the metallic bottle 250.
  • the metallic bottle 250 may be moved into contact with the thread forming device 268.
  • the metallic bottle 250 is positioned in a chuck 278 to support the metallic bottle 250 and hold the metallic bottle 250 in a predetermined position.
  • the thread forming surface 274 of the inner piece 270 contacts and applies a force to the interior surface 261 of the neck portion 258 and the thread forming surface 276 of the outer piece 272 contracts and applies a force to an exterior surface of the neck portion 258.
  • the surfaces 274, 276 of the inner and outer pieces 270, 272 thus apply a compressive force therebetween to form the threads 264 of a predetermined size, shape, and geometry to the neck portion 258 of the metallic bottle. While the threads 264 are formed, the thread forming device 268 rotates around the axial center 279 of the metallic bottle 250 so that the inner core piece 270 and the outer core piece 272 move around a circumference of the neck 258 of the metallic bottle 250.
  • threads 264 may be formed on an exterior surface of the neck 258 of the metallic bottle 250 as described in U.S. Patent Application No. 14/212,545 which is incorporated herein in its entirety by reference.
  • threads may be formed on an interior surface of the neck of the metallic bottle 250 which are adapted to receive a threaded closure as described in U.S. Provisional Patent Application No. 61/937,125, which is incorporated herein in its entirety by reference.
  • the tools used during the dome forming 222, necking 224, shaping 226, embossing 228, trimming 230, curling 232, mouth mill 234, and thread forming 235 may include one or more holding parts, pressing tools, first drawing dies, second drawing dies, trimming tools, cutters, turning-back dies, bending dies, thread forming tools, and rollers.
  • Fig. 5A illustrates threads 264 that have been integrally formed on an exterior surface of the neck portion 258 of the metallic bottle 250 according to one embodiment of the present invention.
  • the threads 264 are adapted to receive a closure, such as a ROPP closure, to seal the opening 260 of the metallic bottle 250.
  • a closure such as a ROPP closure
  • threads may be formed on an interior surface of the neck portion 258 to receive a threaded closure which is inserted into the opening 260 of the metallic bottle 250.
  • the threads 264 have helical ridges 280 and have a size, shape, alignment, and geometry similar to threads of glass containers which are generally known in the art as disclosed in drawings produced and distributed by the Glass Packaging Institute (GPI), including GPI drawing number 5457 for glass finish number 545 which is incorporated herein in its entirety by reference.
  • the threads 264 have the dimension, shape, geometry, and alignment of threads described in GPI drawing number 5457.
  • the threads 264 have an exterior diameter 282 between approximately 1.44 inches and approximately 1.54 inches.
  • the threads 264 have an exterior diameter 282 between approximately 1.24 inches and approximately 1.34 inches.
  • the threads 264 have an exterior diameter 282 between about 1.05 inches and about 1.15 inches.
  • the threads have a pitch 284, or distance from the crest of one thread 264 to the crest of the next thread 264, of approximately 0.125 inches, or eight threads per inch.
  • Sealing surfaces are formed on an uppermost surface portion 286 of the bottle 250.
  • the sealing surfaces are adapted to be rigid and dimensionally consistent to contact a liner, polymer sealing surface, or gasket in an interior portion of a closure interconnected to the bottle 250, as discussed below in conjunction with Fig. 7.
  • the uppermost surface portion 286 is substantially parallel to the bottom dome portion 254 of the metallic bottle 250.
  • a throttle curl is formed on the sealing surface of the upper surface 286 of the metallic bottle 250. Throttle curling is an operation that better defines or changes the shape and dimensions of the curl. In one embodiment, throttle curling is performed to change the curl radius to create a better seal surface.
  • the sealing surfaces of the metallic bottle 250 have the dimensions and geometry described in GPI drawing number 5457.
  • an interior surface portion of the uppermost surface 286 has a maximum radius of curvature of approximately 0.031 inches.
  • inspections 236 may optionally be performed on the metallic bottles 250. Inspections may include camera testing, pressure testing, or other suitable testing.
  • the metallic bottles 250 may be packaged.
  • the metallic bottles 250 may be bundled 238.
  • bundling 238, the metallic bottles 250 may be arranged in groups. The group size may vary and in some embodiments, the group size is about 100 metallic bottles 250. The size of the group may depend upon the diameter of the metallic bottles 250.
  • the groups may be bundled using plastic strapping or other similar known processes. A special consideration for recycled aluminum alloy containers is that the strap tension must be controlled in order to prevent heel denting in high contact pressure areas of the bundle.
  • the metallic bottles 250 are bulk palletized 240 similar to other beverage containers, such as beverage cans.
  • the empty metallic bottles 250 are filled 242 with a beverage.
  • a closure such as a ROPP closure 288, is placed over the neck portion 258 of the metallic bottle 250 and interconnected to the metallic bottle 250 to seal the opening 260 as illustrated in Figs. 6A and 6B and threads are formed on the ROPP closure 288 as illustrated in Fig. 7.
  • the ROPP closure 288 Before the ROPP closure 288 is placed on the metallic bottle 250, the ROPP closure 288 has an unthreaded body portion 290A that is generally cylindrical.
  • the ROPP closure 288 has a top portion 291 with a generally circular shape and a downward facing aperture 292 with an interior diameter predetermined to fit over the threads 264 of the metallic bottle 250.
  • a detachable pilfer band 294 is optionally formed on a lower portion of the body portion 290 of the ROPP closure 288.
  • the detachable pilfer band 294 is formed by cutting a series of serrations 296 into the lower portion of the body portion 290A.
  • the detachable pilfer band 294 is adapted to fit over a pilfer band skirt 298 formed on the neck portion 258 of the metallic bottle 250 axially lower than the threads 264.
  • the pilfer band skirt 284 is formed from a lower portion of the threads 264.
  • the unthreaded ROPP closure 288 is positioned over the neck portion 258 of metallic bottle 250 as illustrated in Fig. 6B.
  • a capping apparatus 302 illustrated in Fig. 7, forms threads 308 on the ROPP closure 288 to seal the opening 260 of the metallic bottle 250.
  • the capping apparatus 302 is operable to position the unthreaded ROPP closure 288 over the neck portion 258 of the metallic bottle 250.
  • the capping apparatus 302 has a pressing block 304 that includes a chuck operable to hold and compress a top portion 291 of the ROPP closure 288 downwardly.
  • One or more thread rollers 306 of the capping apparatus 302 are positioned in contact with an exterior surface of the body portion 290 of the ROPP closure 288.
  • the thread rollers 306 are operable to rotate around the exterior of the ROPP closure 288 and apply a compressive force to the body portion 290.
  • Threads 308 are formed on the ROPP closure 288 by the thread rollers 306 as they press against and wind the body portion 290 along the threads 264 of the metallic bottle 250.
  • the thread rollers 306 generally start at the top of the threads 264 of the metallic bottle 250 and work downwardly around the ROPP closure 288.
  • the capping apparatus 302 may include a compressing block 312 to press against the exterior top portion 291 of the ROPP closure 288.
  • Fig. 7 also illustrates a curl 316 formed on the upper portion 286 of the metallic bottle 250.
  • the curl 316 is formed by the capping apparatus 302 bending the upper portion 286 of the metallic bottle 250 outwardly.
  • the capping apparatus 302 also includes one or more pilfer rollers 310 that can also rotate around the exterior of the ROPP closure 288.
  • the pilfer rollers 310 press against an exterior surface of the pilfer band 294 to decrease the interior diameter of the pilfer band 294 of the ROPP closure 288.
  • the pilfer band skirt 298 of the bottle 250 thus has an outer diameter greater than an interior diameter of the detachable pilfer band 294. The pilfer band skirt 298 prevents the pilfer band 294 from being removed from the bottle when the ROPP closure 288 is rotated to open the metallic bottle 250.
  • the detachable pilfer band 294 contacts the pilfer band skirt 298 preventing the detachable pilfer band 294 from sliding over the pilfer band skirt 298.
  • the serrations 296 of the ROPP closure 288 illustrated in Fig. 6A
  • the detachable pilfer band 294 is retained on the neck portion 258 of the metallic bottle 250 identifying to the consumer that the ROPP closure 288 has been opened and the seal to the metallic bottle 250 compromised.
  • the ROPP closure 274 may be threaded back onto the neck 258 of the metallic bottle 250 to reestablish the seal of the metallic bottle 250 to prevent contents therein spilling.
  • metallic bottles 250D, 250E of embodiments of the present invention are illustrated.
  • the bottles may be adapted to receive ROPP closures of any diameter.
  • the diameter of the ROPP closure 288 is approximately 1.5 inches.
  • the diameter of the ROPP closure 288 is approximately 1.3 inches.
  • the diameter of the ROPP closure 288 is approximately 1.1 inches.
  • Knurls have been formed on the ROPP closures 318 to provide a gripping surface for a consumer.
  • metallic bottle 250D has a volume predetermined to hold approximately 12 ounces of a product.
  • metallic bottle 250E has a volume predetermined to hold about 16 ounces of a product.
  • Table 6 illustrates the slug hardness for reference material 1050, Material 1 and Material 2 after finishing.
  • Table 7 illustrates the lubrication parameters and lubrication weight for 100kg of slugs for a reference material 1050, Material 1, and Material 2. Note that the lubrication material for the reference material 1050 was different from the lubrication used for the slugs comprising Material 1 and Material 2.
  • the lubrication process was performed on an offline tumbler for all slugs.
  • the difference in lubricant ratio is due to the type of surface treatment (tumbled surface requires less lubricant than shot-blasted surface treatments).
  • the monobloc die used was a standard sintered carbide GJ15 - 1000HV.
  • the shape of the die was conical.
  • the punch head was a Bohler S600 - 680HV.
  • Tubes were brushed to highlight potential visual score marks and scratches.
  • the internal varnish on the containers was Epoxy-phenolic.
  • the setting of the application of the internal Epoxy-phenolic varnish was standard. Temperature and time of curing was about 482°F during about 8 min 30s. There were no issues of porosity at following the internal varnish.
  • White base coat with gloss was applied to the containers. A printed design was also added to the containers.
  • Example 1 utilized Material 1 and Material 2 with slugs that had a diameter of about 1.7579 in and a height of about 0.2165 in.
  • the mass of the slug material was about 0.820 oz.
  • the final dimension of the container following processing, but prior to trimming, was about 5.9055 in. +/- about 0.3937 in. in height by about 1.7772 in. in diameter.
  • the thickness of the final container was about 0.0110 in. +/- 0.0012 in.
  • the final mass of the container was about 0.819 oz.
  • a standard necking tooling was used.
  • Example 2 utilized Material 1 and Material 2 with slugs that had a diameter of about 1.7579 in. and a height of about 0.1969 in.
  • the mass of the slug material was about 0.745 oz.
  • the final dimensions of the container following processing, but prior to trimming was about was about 5.9055 in +/- about 0.3937 in. in height by about 1.7772 in. in diameter.
  • the thickness of the final container was about 0.0094 in. +/- 0.0012 in.
  • the final mass of the container was about 0.728 oz.
  • a larger diameter pilot was used. The diameter of the pilot was about 0.0039 in. larger.
  • Fig. 10 illustrates a steel punch head and a sintered carbide press die used in various embodiments of the present invention. The punch head surface after pressing all Material 1 slugs was without any score mark on it. As shown in Fig. 10, the press die in sintered carbide was greatly damaged throughout the perimeter. Press speed lines for both experiments were at about 69 inches per minute and both experiments ran without major stops.
  • Table 8 illustrates the extrusion force for samples made using the parameters discussed in Experiment 1 for Materials 1 and 2 and Experiment 2 for Material 1 and 2. A reference material of 1050 is also shown. TABLE 8
  • Table 9 illustrates the tube parameters for Materials 1 and 2 using the slug dimensions of Experiment 1 and the tube parameters for Materials 1 and 2 using the slug dimensions of Experiment 2.
  • the bottom thickness was within the tolerance for each material except for Material 2, Experiment 2.
  • the bottom wall thickness tolerance and the top wall thickness tolerance were not achieved for either Experiment 2 material.
  • Table 10 illustrates the bulging depth (in.) and the porosity in milli-amps (mA), which is a measure of the integrity of the interior coating.
  • Table 11 illustrates the results of a test of the column strength of the threads of IE containers made with standard (1070) aluminum alloy compared with the column strength of threads of D&I containers measured in lbf.
  • the D&I containers exhibited a much greater axial load capacity due to the alloy's higher strength properties.
  • This table illustrates the problem of forming a threaded neck in a metal bottle manufactured by impact extrusion using standard aluminum alloys.
  • Table 12 compares the thread depth of threads of IE containers made with standard (1070) aluminum alloy compared with threads of D&I containers measured in inches.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Ceramic Engineering (AREA)
  • Containers Having Bodies Formed In One Piece (AREA)
  • Extrusion Of Metal (AREA)
  • Forging (AREA)
  • Closures For Containers (AREA)

Abstract

La présente invention concerne d'une manière générale la formation d'un col fileté dans une bouteille métallique fabriquée par un procédé connu comme filage par choc. De façon plus spécifique, la présente invention concerne des procédés, un appareil et des compositions d'alliage utilisés dans la fabrication par filage par choc de conteneurs et autres articles ayant des caractéristiques de résistance suffisantes pour permettre un filetage des cols de conteneur pour recevoir une fermeture filetée sur le col fileté.
PCT/US2014/033182 2013-04-09 2014-04-07 Bouteille filée par choc, en aluminium, ayant un col fileté fait d'aluminium recyclé et d'alliages améliorés WO2014168873A2 (fr)

Priority Applications (8)

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ES14782344T ES2921800T3 (es) 2013-04-09 2014-04-07 Botella de aluminio extruido por impacto con cuello roscado fabricada a partir de aluminio reciclado y aleaciones mejoradas
RU2015147899A RU2642231C2 (ru) 2013-04-09 2014-04-07 Получаемая прессованием ударным выдавливанием алюминиевая бутылка с резьбой на горлышке, изготавливаемая из рециклированного алюминия и усиленных сплавов
CA2908181A CA2908181C (fr) 2013-04-09 2014-04-07 Bouteille filee par choc, en aluminium, ayant un col filete fait d'aluminium recycle et d'alliages ameliores
AU2014251206A AU2014251206B2 (en) 2013-04-09 2014-04-07 Aluminum impact extruded bottle with threaded neck made from recycled aluminum and enhanced alloys
JP2016507586A JP6255084B2 (ja) 2013-04-09 2014-04-07 再利用アルミニウム合金から作られる、ネジ込みネックを有するアルミニウム衝撃押出成形ボトル及びその製法
MX2015013932A MX2015013932A (es) 2013-04-09 2014-04-07 Botella de aluminio extruida por impacto con cuello roscado hecha de aluminio reciclado y aleaciones mejoradas.
CN201480032990.5A CN105324316B (zh) 2013-04-09 2014-04-07 由再循环的铝和增强的合金制造的具有带螺纹的颈部的冲挤的铝瓶
EP14782344.7A EP2983998B1 (fr) 2013-04-09 2014-04-07 Bouteille filée par choc, en aluminium, ayant un col fileté fait d'aluminium recyclé et d'alliages améliorés et son procédé de fabrication

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US201361809952P 2013-04-09 2013-04-09
US61/809,952 2013-04-09

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CA (2) CA2908181C (fr)
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US9844805B2 (en) 2017-12-19
AU2014251206A1 (en) 2015-11-12
WO2014168873A3 (fr) 2015-01-15
EP2983998A2 (fr) 2016-02-17
RU2015147899A (ru) 2017-05-15
EP2983998B1 (fr) 2022-04-27
US20170036255A1 (en) 2017-02-09
GT201500310A (es) 2017-01-04
CA2990040C (fr) 2021-07-20
US20140298641A1 (en) 2014-10-09
US20180078982A1 (en) 2018-03-22
CL2015002985A1 (es) 2016-08-12
CA2908181C (fr) 2018-02-20
ES2921800T3 (es) 2022-08-31
JP2016524536A (ja) 2016-08-18
CN107985713A (zh) 2018-05-04
HUE059164T2 (hu) 2022-10-28
JP6255084B2 (ja) 2017-12-27
CA2908181A1 (fr) 2014-10-16
US9517498B2 (en) 2016-12-13
CN105324316A (zh) 2016-02-10
EP2983998A4 (fr) 2017-10-11
US20210205868A1 (en) 2021-07-08
MX2015013932A (es) 2016-06-06
AU2014251206B2 (en) 2018-03-08
RU2642231C2 (ru) 2018-01-24
MX2021014034A (es) 2021-12-10
CN105324316B (zh) 2018-01-12
CA2990040A1 (fr) 2014-10-16

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